BACKGROUND OF THE INVENTION
[0001] The present invention relates to a method and device for controlling a small spacing
between a magnetic head and a magnetic recording medium in a magnetic recording apparatus.
[0002] A conventional small spacing control device, as disclosed in JP-A-62-125521, includes
a magnetic recording medium having an electrically conductive surface and connected
to a power source, a unit for controlling a small spacing between the surface of the
magnetic recording medium and a magnetic head, a tunnel electrode attached to the
magnetic head for measuring the small spacing and connected to the power source. The
small spacing control device measures the small spacing between the magnetic head
and the magnetic recording medium on the basis of the magnitude of a tunnel current
flowing across the tunnel electrode and magnetic recording medium surface, and feeds
the measured value back to the control device so that the small spacing is constant.
[0003] Since the tunnel effect is used for measuring the small spacing using the control
device, the surface of the magnetic recording medium to be measured is required to
have an electrically conductive surface. Furthermore, means for applying a voltage
across the conductive surface of the magnetic recording medium and the tunnel electrode
provided on the magnetic head is required. Usually, such voltage applying means generates
noise when the magnetic recording medium moves, so that the control device is not
suitable for measuring such small current. Means for applying such voltage to the
moving magnetic recording medium is disclosed in JP-A 62-125521.
SUMMARY OF THE INVENTION
[0004] It is an object of the present invention to provide a small spacing control method
and apparatus for measuring a small spacing between the head and a magnetic recording
medium with high accuracy without being influenced by the kind of the magnetic recording
medium.
[0005] It is another object of the present invention to provide a small spacing control
method and apparatus for controlling a small spacing between the head and a magnetic
recording medium using a simple structure.
[0006] In one aspect of the present invention, there is provided a method of controlling
a small spacing between a magnetic recording medium and a magnetic head by moving
the magnetic recording medium and magnetic head relative to each other in a magnetic
recording apparatus, comprising the steps of:
irradiating light along a plane of a substrate provided in the vicinity of the magnetic
head on a side of a support which supports the magnetic head such that the light is
totally reflected by an end face of the substrate opposing the magnetic recording
medium;
receiving light reflected by the end face due to such irradiation using a photodetection
element to provide a photodetection intensity signal;
calculating a measured small-spacing signal corresponding to the small spacing on
the basis of the photodetection intensity signal;
computing a control signal to eliminate the difference between the measured small-spacing
signal and a target small-spacing signal in accordance with the difference; and
outputting the control signal to means for adjusting the small spacing between the
magnetic head and the magnetic recording medium.
[0007] In another aspect of the present invention, there is provided a device for controlling
a small spacing between a magnetic recording medium and a magnetic head supported
by a support in a magnetic recording apparatus such that a track on the magnetic recording
medium is randomly accessed by the magnetic head, comprising:
a substrate fixed to the support in the vicinity of the magnetic head such that the
substrate has a plane perpendicular to a surface of the magnetic recording medium;
a light emitting element provided on the substrate;
an incident side light guide for guiding the light from the light emitting element
such that the light is totally reflected by an end face of the substrate opposing
the magnetic recording medium;
a reflected side light guide formed on the substrate for guiding the light reflected
by the end face;
a photodetection element for detecting the reflected light guided by the reflected
side light guide and outputting a photodetection intensity signal in accordance with
the intensity of the detected light;
a small-spacing computing unit for outputting a measured small spacing signal corresponding
to the photodetection intensity signal;
a control computing unit for computing and outputting a control signal to eliminate
the difference between the measured small-spacing signal and a target small-spacing
signal in accordance with that difference; and
a magnetic head height position adjusting actuator for adjusting the small spacing
between the magnetic head and the magnetic recording medium in accordance with the
control signal.
[0008] Other features and objects of the present invention will be apparent from the following
detailed description with reference to the drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
FIGs. 1 and 2 show the structure of an illustrative embodiment of the present invention;
FIG. 3 illustrates a structure for measuring a small spacing;
FIGs. 4A, 4B, 5 - 8 illustrate the principles of a measuring method;
FIG. 9 is a flowchart indicative of the operation of a conversion and operation circuit;
FIG. 10 is a diagram showing the construction of another embodiment of an optical
converter; and
FIG. 11 is a diagram showing the construction of another embodiment of the structure
of controlling a small spacing for a magnetic head.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0010] The basic concept of the present invention will be described before an embodiment
of the present invention is described.
[0011] Assume that light is irradiated onto an optical transparent material and totally
reflected by an end face of the material. When the incident light arrives at the end
face, a small amount of light oozes out of the transparent material and again enters
same to become reflective light. The oozing-out light is called an evanescent wave
and such effect is called an evanescent effect. When another medium is placed close
to a small region where light oozes out, a quantity of light reflected by an end face
of the optically transparent material differs from that occurring when there is no
such medium in that region. If another medium is moved in the small region to thereby
change the gap between the end face of the material and the medium surface, the quantity
of reflected light changes continuously. Therefore, there is a one-to-one correspondence
relationship between such small spacing and the quantity of reflected light, so that
the small spacing is measured by detecting the quantity of reflected light. In the
embodiment of the present invention to be described hereinafter, the small spacing
between the magnetic head and magnetic recording medium is measured using such relationship.
[0012] While the present invention is also applicable to magnetic tape recording devices,
and magnetic recording devices such as VTRs using a magnetic recording medium, the
present embodiment which uses a rotating disk-like magnetic recording medium will
be described.
[0013] FIG. 1 shows one embodiment of the present invention in which a support 1 is attached
so as to oppose a magnetic disk which is a kind of a magnetic recording medium rotating
around a rotational shaft 4 and controlled by a magnetic head height position adjusting
actuator 5 such that the small spacing is a desired value. In the embodiment, a usual
slider may be used as the support 1. Actuator 5 is connected through arm 10' to track
position actuator 9 and is moved radially of magnetic disk 3 in accordance with a
track position designating signal 15 from magnetic disk controller 8. Optical converter
2 is attached to a side of support 1 and connected through a line 11 to a small spacing
computing unit 6, which measures the small spacing and delivers a measured small spacing
signal to control computing unit 7. Computing unit 7 compares a target small-spacing
signal 13 from magnetic disk controller 8 and the measured small-spacing signal 12
to control such that the error becomes zero. FIG. 2 shows support 1 and optical converter
2 on enlarged scale.
[0014] Optical converter 2 and small-spacing computing unit 6 will be described in more
detail hereinafter. FIG. 3 shows optical converter 2 and small-spacing computing unit
6. A process for manufacturing the respective optical elements of optical converter
2 is well known and further description thereof will be omitted. Optical converter
2 includes, on substrate 16, light emitting element 17, optical waveguides 21a, 21b
which guide light from light emitting element 17 to photodetection element 20d and
incident light waveguides 18a - 18c; three incident light waveguides 18a - 18c which
guide light from optical waveguide 21a to a lower surface of substrate 16 (hereinafter
referred to as a total reflection surface 22), reflected optical waveguides 19a -
19c which guide light reflected by total reflection surface 22 to photodetection elements
20a - 20c, photodetection elements 20a - 20c which detect the respective intensities
of the light, and photodetection element 20d which detects the intensity of the light
in optical waveguide 21b. A portion of light emitted by light emitting element 17
and appearing on an upper surface of light emitting element 17 is guided through optical
waveguide 21b to photodetection element 20d to be used as a signal for controlling
the intensity of light emitted by light emitting element 16. The light appearing on
a lower surface of the light emitting element is divided through light waveguide 21a
to three light portions which are then guided through incident light waveguides 18a
- 18c to total reflection surface 22. At this time, the light portions incident on
total reflection surface 22 differ in incident angle (i₁, i₂ and i₃). Reflected light
waveguides 19a - 19c are provided so as to coincide with angles at which those light
portions are reflected and the reflected light portions are guided to photodetection
elements 20a - 20c to detect the respective intensities of the light. The length of
total reflection surface 22 of substrate 16 is a minimum required and the remaining
lower surface is cut at a constant angle so as to reduce an error in which optical
converter 2 is attached. As shown left in FIG. 3, total reflection surface 22 is cut
at a predetermined angle ϑ to thereby prevent total reflection surface 22 from becoming
dirty with a lubricant or the like on the surface of the magnetic disk 3.
[0015] Small spacing computing unit 6 includes amplifiers 23a - 23d, conversion matrix circuit
27 and a light emitting element driver 28 which applies a light emitting element drive
signal 26 to light emitting element 16 for light emitting purposes. A light intensity
signal 22e detected by photodetection element 20d is amplified by amplifier 23e, the
resulting signal is fed as a light emitting output signal back so as to maintain the
light emission output constant. Photodetection intensity signals 22a - 22c detected
by photodetection elements 20a - 20c are amplified by amplifiers 23a - 23c, the amplified
signals are delivered as reflectivity signals 24a - 24c to conversion matrix circuit
27 to calculate a measured small spacing signal 12.
[0016] If magnetic disk 3 is sufficiently spaced from total reflection surface 22, total
reflection occurs on the total reflection surface, so that the outputs of photodetection
elements 20a - 20c obtained at that time can be assumed to have a reflectivity of
1. This causes the reflectivity to be specified by adjusting and standardizing the
amplification degree of amplifiers 23a - 23c under the above conditions.
[0017] When magnetic disk 3 approaches total reflection surface 22 of substrate 16, reflectivity
R is given by

where

and n₂ is the refractive index of substrate total reflection surface 22; n₁ is the
refractive index of the surface of magnetic disk 3; n₃ is the refractive index of
the spacing; d is the small spacing; i is the angle of incident light; and λ is the
wavelength of the incident light.
[0018] N₁, N₂ and N₃ differ depending on the direction of polarization of the incident light.
In the case of S-polarized light,

In the case of P-polarized light,

[0019] FIG. 4 shows one example of the relationship between small spacing and reflectivity.
The axis of abscissas represents normalization of the small spacing with the wavelength
λ of the incident light while the axis of ordinates the reflectivity. FIG. 4A represents
such relationship where i = 18 degrees, n₁ = 2.4, n₂ = 3.4 and n₃ = 1.0 while FIG.
4B shows a similar relationship under the same conditions except that only n₁ = 1.6.
The reflectivities of S- and P-polarized light waves are minimum when the small spacing
is zero. As the small spacing increases, the reflectivities increase. For S-polarized
light, the reflectivity is substantially 1 when the small spacing is λ/2 while for
P-polarized light, the reflectivity does not become 1 even if the small spacing is
λ. By comparing FIGs. 4A and 4B, it will be seen that the P-polarized light is less
influenced by changes in n₁.
[0020] FIG. 5 shows only P-polarized light waves of FIGs. 4A and 4B. When the small spacing
is λ/2 or more, the P-polarized light is not influenced by changes in n₁, but influenced
when the small spacing is less than λ/2 and an error is involved when the small spacing
is small.
[0021] A method of reducing the influence of changes in n₁ will be described below. FIG.
6 shows the relationship between small spacing and reflectivity when i = 20 degrees
and FIG. 7 a similar relationship when i = 22 degrees, with the remaining parameters
being the same as those in FIG. 5. As i increases, the influence of changes in n₁
is reduced, while the small spacing where the reflectivity changes is reduced. Thus,
if portions of the relationships of FIGs. 5, 6 and 7 which are not influenced by changes
in n₁ and where reflectivities are changed by changing the small space are extracted
and combined, measurement which is not influenced by changes in n₁ and where the range
of measuring the small spacing is wide is achieved.
[0022] FIG. 8 shows one such example where if the small spacing is narrow, the relationship
for i = 22 degrees is used; if the spacing is intermediate, the relation for i = 20
degrees is used; and the relationship for i = 18 degrees is used as the spacing is
increased. Conversion computing circuit 27 computes such relationship and outputs
a measured small-spacing signal 12.
[0023] FIG. 9 shows the flow of calculations in the conversion computing unit. First, reflectivities
for the respective incident angles are read at F1. If the reflectivity for i = 18
degrees is 0.5 or more at F2, the small spacing is calculated using the reflectivity
for i = 18 degrees at F3. If the reflectivity for i = 18 degrees is 0.5 or less at
F2, the reflectivity for i = 20 degrees is checked at F4. If the reflectivity is 0.5
or more, the small spacing is calculated using the reflectivity for i = 20 degrees
at F5. Unless the above conditions hold, the small spacing is calculated using the
reflectivity for i = 22 degrees at F6 and the small spacing calculated at one of F3,
F5 and F6 is output as a measured small spacing signal 12 at F7. The calculating method
different from the above method is conceivable. For example, refractive indexes n₂,
n₃ are determined by optical converter 2 and the environment where optical converter
2 is used. The respective reflectivites for practically required ranges are calculated
using incident angle i, reflectivity n₁, and small spacing d as parameters. The respective
relationships between reflectivities for the respective incident angles and small
spacings are calculated by multivariate recurrence equations to thereby determine
a computing process by conversion computing unit 27. This process is applicable even
if n₁ is a complex number.
[0024] Alternatively, it may be arranged that the respective reflectivities for P- and S-polarized
light waves are separately detected without using a plurality of incident angles,
that the computing process by conversion computing circuit 27 is determined from the
relationship between those reflectivites, and that the small spacing is measured.
[0025] Another embodiment of optical converter 2 is shown in FIG. 10. The embodiment includes,
on substrate 16, light emitting element 17, photodetection element 20, focusing lens
50 which focuses light from light emitting element 17 onto the total reflection surface,
collimator lens 51 which guides the reflected light to photodetection element array
52, and photodetection element array 52 which detects the reflectivities for a plurality
of reflective angles. This embodiment achieves accurate detection as compared to the
FIG. 3 embodiment.
[0026] While in the above embodiments description has been made using support 1 used so
far, support 1 may be removed if the small spacing is controlled. FIG. 11 shows one
embodiment which realizes such concept. Optical converter 2 is fixed to one surface
of support plate 60 while magnetic head 10 is fixed to the other surface of support
plate 60 with the respective lower ends of members 2 and 10 being flush. Instead of
support 1 of FIG. 1, such assembly is attached to the magnetic head height position
adjusting actuator 5 to thereby provide a small-spacing having a predetermined height
using an operation similar to that described with reference to FIG. 1. Recently, since
a magnetic head such as 10 can be manufactured in a semiconductor process, it may
be formed on the same substrate as optical converter 2.
[0027] According to the present invention, the small spacing can be measured irrespective
of whether the recording medium surface is electrically conductive or not, so that
small-spacing control can be provided for any recording medium.
[0028] According to the present invention, a reflectivity pattern using a plurality of incident
angles is used to measure the small spacing, so that the small spacing can be measured
even if the refractive index of the recording medium surface changes.
[0029] The small spacing measuring elements are optically integrated, so that they may be
attached to the magnetic head for use.
1. A method of controlling a small spacing between a magnetic recording medium (3) and
a magnetic head (10) by moving the magnetic recording medium (3) and magnetic head
(10) relative to each other in a magnetic recording apparatus, comprising the steps
of:
irradiating light along a plane of a substrate (16) provided in the vicinity of the
magnetic head (10) on a side of a support (1) which supports the magnetic head (10)
such that the light is totally reflected by an end face (22) of the substrate (16)
opposing the magnetic recording medium (3);
receiving light reflected by the end face (22) due to such irradiation using a photodetection
element (20) to provide a photodetection intensity signal;
calculating a measured small-spacing signal corresponding to the small spacing on
the basis of the photodetection intensity signal;
computing a control signal to eliminate the difference between the measured small-spacing
signal and a target small-spacing signal in accordance with the difference; and
outputting the control signal to means (5) for adjusting the small spacing between
the magnetic head (10) and the magnetic recording medium (3).
2. A method according to claim 1, when the irradiated light includes light having a polarized
light plane which has polarized light components parallel and perpendicular to a plane
which includes the incident light, and comprising the steps of separating the reflected
light into components having polarized light components parallel and perpendicular
to the plane, and obtaining the measured small-spacing signal using the respective
detected intensity signals corresponding to the parallel and perpendicular light components.
3. A method according to claim 1, comprising the steps of:
irradiating light at a plurality of different angles to the end face;
detecting the respective reflected light components using corresponding photodetection
elements to thereby obtain corresponding detected intensity signals; and
obtaining the measured small-spacing signal on the basis of the detected intensity
signals.
4. A device for controlling a small spacing between a magnetic recording medium (3) and
a magnetic head (10) supported by a support (1) in a magnetic recording apparatus
such that a track on the magnetic recording medium (3) is randomly accessed by the
magnetic head (10), comprising:
a substrate (16) fixed to the support (1) in the vicinity of the magnetic head (10)
such that said substrate (16) has a plane perpendicular to a surface of the magnetic
recording medium (3);
a light emitting element (17) provided on said substrate (16);
an incident side light guide (18) formed on said substrate (16) for guiding the light
from the light emitting element (17) such that the light is totally reflected by an
end face of said substrate (16) opposing the magnetic recording medium (3);
a reflected side light guide (19) formed on said substrate (16) for guiding the light
reflected by the end face;
a photodetection element (20) for detecting the reflected light guided by the reflected
side light guide (19) and outputting a photodetection intensity signal in accordance
with the intensity of the detected light;
a small-spacing computing unit (6) for outputting a measured small spacing signal
corresponding to the photodetection intensity signal;
a control computing unit (7) for computing and outputting a control signal to eliminate
the difference between the measured small-spacing signal and a target small-spacing
signal in accordance with that difference; and
a magnetic head height position adjusting actuator (5) for adjusting the small spacing
between the magnetic head (10) and the magnetic recording medium (3) in accordance
with the control signal.
5. A device according to claim 4, wherein the end surface of said substrate (16) is tilted
to the surface of the recording medium (3) such that the spacing between the end face
and the recording medium (3) increases away from the place where said substrate (16)
is fixed to the support (1).
6. A small spacing control device for controlling a small spacing between a recording
surface of a recording magnetic medium (3) and a magnetic head (10) in a magnetic
recording apparatus, comprising:
a support (1) supporting the magnetic head (10) such that the small spacing is provided
between the recording surface of the magnetic recording medium (3) and the magnetic
head (10);
a substrate (16) fixed to a side of said support (1);
a light emitting element (17) provided on said substrate (16);
an incident side light guide (18) formed on said substrate (16) for guiding the light
from the light emitting element (17) such that the light is totally reflected by an
end face of said substrate (16) opposing the magnetic recording medium (3);
a reflected side light guide (19) for guiding the light reflected by the end face
of said baseplate;
a photodetection element (20) for detecting the light guided by the reflected side
light guide (19) and outputting a photodetection intensity signal in accordance with
the intensity of the detected light;
a small-spacing computing unit (6) for receiving the photodetection intensity signal
and calculating a measured small spacing signal corresponding to the photodetection
intensity signal;
a control computing unit for computing a control signal to reduce the difference between
the computed measured small-spacing signal and a target small-spacing signal, and
outputting the control signal to an actuator for adjusting the small spacing between
the magnetic head (10) and the recording medium (3) surface.
7. A magnetic head small-spacing control device in a magnetic recording apparatus, comprising:
a substrate (16) having an end face opposing a magnetic recording medium (3) for a
magnetic head (10) and fixed in the vicinity of the magnetic head (10) supported by
a support (1);
a light emitting element (17) provided on said substrate (16);
incident side waveguides (18a - 18c) for dividing the light from said light emitting
element (17) into two or three light portions, for guiding the two or three light
portions to the end face and for totally reflecting the respective light portions
at different incident angles to the end face;
reflected side light waveguides (19a - 19c) for guiding the light portions reflected
at the corresponding reflection angles;
photodetection elements (20a - 20c) for detecting the respective light portions guided
by said reflected side light waveguides and for outputting photodetection intensity
signals corresponding to the respective intensities of the detected light portions;
a small-spacing computing unit (6) for receiving the respective photodetection intensity
signals, and for calculating a measured small-spacing signal corresponding to the
photodetection intensity signals; and
means (5) for controlling the small-spacing between the magnetic head (10) and the
recording medium (3) on the basis of the computed measured small-spacing signal.
8. A device for controlling a small spacing between a magnetic head (10) and a magnetic
disk (3) in the magnetic disk apparatus in which a support is disposed to which the
magnetic head (10) is attached so as to oppose a recording surface of the magnetic
disk (3), the support being attached to an arm (10'), whereby the magnetic head (10)
accesses a track on the magnetic disk (3) by moving the arm (10') such that the magnetic
head (10) records and reproduces information to and from the recording surface of
the magnetic disk (3), comprising:
an optical converter (2) provided on a side of the support for detecting irradiated
light reflected from an end face of the converter for outputting a detected light
intensity signal;
said optical converter (2) being attached on the side of the slider such that the
end face of the converter opposes the recording surface of the magnetic disk (3);
means (6) for computing a signal indicative of the small-spacing between the magnetic
disk (3) and the magnetic head (10) on the basis of the detected light intensity signal;
and
position control means (5) for controlling the small spacing so as to be equal to
a target value using the computed signal indicative of the small spacing.
9. A device for controlling a small spacing between a magnetic head (10) and a magnetic
recording medium (3), comprising:
a substrate (16) having an end face in a surface of the magnetic head (10) opposing
the magnetic recording medium (3), said substrate being fixed in the vicinity of the
magnetic head (10) supported by a support (1), the substrate having a surface perpendicular
to the recording medium and through which light transmits;
a light emitting element (17) provided on said substrate (16);
a focusing lens (50) for focusing onto the end face the light which is transmitted
radially along the surface of said substrate from said light emitting element (17)
and totally reflecting the focused light within a particular incident angle range;
a collimator lens (51) for collimating radial light rays reflected by the substrate
(16) end face;
a plurality of photodetection elements (52) for receiving the collimated light rays
and outputting photodetection intensity signals indicative of detected intensities
of those light rays;
a small-spacing computing unit (6) for receiving the respective photodetection intensity
signals and computing a measured small-spacing signal corresponding to those photodetection
intensity signals; and
means (5) for adjusting to a target value the small spacing between the magnetic head
(10) and the magnetic recording medium (3) on the basis of the computed measured small-spacing
signal.
10. A small spacing control device according to claim 6, wherein the polarized light surface
by which light is totally reflected is parallel to a plane which contains the incident
light and the reflected light.
11. A small spacing control device according to claim 6, wherein the totally reflected
light includes light having a polarized light plane which, in turn, has polarized
light components parallel and perpendicular to a plane which contains the incident
light and reflected light, and wherein the reflected light is separated into polarized
light components parallel and perpendicular to the plane which contains the incident
light and the reflected light, and the measured small-spacing signal is obtained from
the respective photodetection intensity signals.
12. A small spacing control device for controlling a small spacing between a recording
surface of a recording magnetic medium (3) and a magnetic head (10) in a magnetic
recording apparatus, comprising:
a support (1) supporting the magnetic head (10) such that the small spacing is provided
between the recording surface of the magnetic recording medium (3) and the magnetic
head (10);
a substrate (16) fixed to a side of said support (1);
a light emitting element (17) provided on said substrate (16);
an incident side light guide (18) formed on said substrate (16) for guiding the light
from the light emitting element (17) such that the light is totally reflected by an
end face of said substrate (16) opposing the magnetic recording medium (3);
a reflected side light guide (19) for guiding the light reflected by the end face
of said substrate;
a photodetection element (20) for detecting the light guided by the reflected side
light guide (19) and outputting a photodetection intensity signal in accordance with
the intensity of the detected light; and
a small-spacing computing unit (6) for receiving the photodetection intensity signal
and calculating a measured small-spacing signal corresponding to the photodetection
intensity signal.